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Preparation of ureido-functionalized PVA/silica mesoporous fibre membranes via electrospinning for adsorption of Pb2+ and Cu2+ in wastewater
Author(s) -
Meimei Zhou,
Weizhen Tang,
Pingping Luo,
Jiqiang Lyu,
Aixia Chen,
Longkai Qiao,
Daniel Nover
Publication year - 2017
Publication title -
water science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.406
H-Index - 137
eISSN - 1996-9732
pISSN - 0273-1223
DOI - 10.2166/wst.2017.405
Subject(s) - electrospinning , adsorption , membrane , wastewater , chemical engineering , mesoporous material , mesoporous silica , chemistry , polymer chemistry , materials science , waste management , polymer , organic chemistry , biochemistry , catalysis , engineering
Ureido-functionalized mesoporous polyvinyl alcohol/silica composite nanofibre membranes were prepared by electrospinning technology and their application for removal of Pb 2+ and Cu 2+ from wastewater was discussed. The characteristics of the membranes were investigated by scanning electron microscopy, transmission electron microscopy, X-ray diffraction, and N 2 adsorption-desorption analysis. Results show that the membranes have long brous shapes and worm-like mesoporous micromorphologies. Fourier transform infrared spectroscopy confirmed the membranes were successfully functionalized with ureido groups. Pb 2+ and Cu 2+ adsorption behavior on the membranes followed a pseudo-second-order nonlinear kinetic model with approximately 30 minutes to equilibrium. Pb 2+ adsorption was modelled using a Langmuir isotherm model with maximum adsorption capacity of 26.96 mg g -1 . However, Cu 2+ adsorption was well described by a Freundlich isotherm model with poor adsorption potential due to the tendency to form chelating complexes with several ureido groups. Notably, the membranes were easily regenerated through acid treatment, and maintained adsorption capacity of 91.87% after five regeneration cycles, showing potential for applications in controlling heavy metals-related pollution and metals reuse.

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